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Secondary control strategy of islanded micro-grid based on multi-agent consistency

机译:基于多智能体一致性的孤岛微电网二次控制策略

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The technology of virtual synchronous generator has attracted much attention in the field of distributed generation and micro-grid, as it could simulate the internal mechanism and external characteristics of synchronous generator. Affected by the new energy power generation, line impedance, local load and other factors, inverters using the droop control or VSG control (differential regulation) cannot ensure the stable operation of the micro-grid, so the secondary control of frequency and voltage of islanding micro-grid is essential. Aiming at the limitations of centralized and decentralized control, a control method of distributed hierarchical control method based on dynamic consistency algorithm has proposed. The distributed micro sources are equivalent to the agents, and each agent only use local information and adjacent agent's information interaction through the consistency algorithm, then control the P-f curve adaptively by using the PI controller's function, thus the constant frequency and power allocation have been realized. The physical simulation model of micro-grid has established on the MATLAB/Simulink simulation platform, and its performance in different operating conditions is simulated and analyzed, with the correctness and effectiveness of the proposed secondary control method are verified.
机译:虚拟同步发电机技术可以模拟同步发电机的内部机理和外部特性,因此在分布式发电和微电网领域引起了广泛的关注。受新能源发电,线路阻抗,局部负载等因素的影响,采用下垂控制或VSG控制(微分调节)的逆变器无法确保微电网的稳定运行,因此孤岛频率和电压的二次控制微电网至关重要。针对集中控制和分散控制的局限性,提出了一种基于动态一致性算法的分布式分级控制方法。分布式微源相当于智能体,每个智能体仅通过一致性算法利用本地信息和相邻智能体的信息交互,然后利用PI控制器的功能自适应地控制Pf曲线,从而实现了恒定的频率和功率分配。在MATLAB / Simulink仿真平台上建立了微电网的物理仿真模型,并对其在不同工况下的性能进行了仿真分析,验证了所提二次控制方法的正确性和有效性。

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